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步态中三维足部结构的生物力学分析:临床应用的基础工具。

Biomechanical analysis of the three-dimensional foot structure during gait: a basic tool for clinical applications.

作者信息

Gefen A, Megido-Ravid M, Itzchak Y, Arcan M

机构信息

Department of Biomedical Engineering, Faculty of Engineering, Tel Aviv University, Tel Aviv 69978, Israel.

出版信息

J Biomech Eng. 2000 Dec;122(6):630-9. doi: 10.1115/1.1318904.

Abstract

A novel three-dimensional numerical model of the foot, incorporating, for the first time in the literature, realistic geometric and material properties of both skeletal and soft tissue components of the foot, was developed for biomechanical analysis of its structural behavior during gait. A system of experimental methods, integrating the optical Contact Pressure Display (CPD) method for plantar pressure measurements and a Digital Radiographic Fluoroscopy (DRF) instrument for acquisition of skeletal motion during gait, was also developed in this study and subsequently used to build the foot model and validate its predictions. Using a Finite Element solver, the stress distribution within the foot structure was obtained and regions of elevated stresses for six subphases of the stance (initial-contact, heel-strike, midstance, forefoot-contact, push-off, and toe-off) were located. For each of these subphases, the model was adapted according to the corresponding fluoroscopic data, skeletal dynamics, and active muscle force loading. Validation of the stress state was achieved by comparing model predictions of contact stress distribution with respective CPD measurements. The presently developed measurement and numerical analysis tools open new approaches for clinical applications, from simulation of the development mechanisms of common foot disorders to pre- and post-interventional evaluation of their treatment.

摘要

开发了一种新颖的足部三维数值模型,该模型首次在文献中纳入了足部骨骼和软组织成分的真实几何和材料特性,用于对其步态期间的结构行为进行生物力学分析。本研究还开发了一套实验方法体系,该体系整合了用于足底压力测量的光学接触压力显示(CPD)方法和用于获取步态期间骨骼运动的数字放射荧光透视(DRF)仪器,随后用于构建足部模型并验证其预测结果。使用有限元求解器,获得了足部结构内的应力分布,并确定了站立六个子阶段(初始接触、足跟撞击、支撑中期、前足接触、蹬离和足趾离地)应力升高的区域。对于这些子阶段中的每一个,根据相应的荧光透视数据、骨骼动力学和主动肌肉力加载对模型进行了调整。通过将接触应力分布的模型预测与各自的CPD测量结果进行比较,实现了对应力状态的验证。目前开发的测量和数值分析工具为临床应用开辟了新途径,从常见足部疾病发生机制的模拟到其治疗的介入前和介入后评估。

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